打破常规:利用 ATP-生物发光技术快速、经济地检测涂料和化妆品中的微生物污染

Mira Mutschlechner, D. Chisté, Harald Schöbel
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引用次数: 0

摘要

传统的培养法虽然是各工业领域细菌检测的 "黄金标准",但在操作和评估过程中,往往无法满足当今对快速性、现场适用性和成本效益的高要求。在此,我们研究了使用基于三磷酸腺苷(ATP)的检测方法来确定涂料和化妆品中微生物污染的可行性,并将其与标准平板计数技术和浸渍法进行了比较。因此,我们首先确定了灵敏度水平,并通过加标试验评估了不同方法之间的准确性和一致性,加标试验使用了经常出现的多种细菌来模拟微生物污染。生物发光强度与对数菌落计数在五个数量级上呈线性比例关系(R2 = 0.99),表明灵敏度很高。总体而言,准确度因测试样本而异,这很可能是由于基质相关的淬火效应造成的。虽然在目标浓度≥ 105 CFU-mL-1 时合格率一直较高,但在低至 103 CFU-mL-1 时也能检测到微生物污染,从而满足了不同行业的高要求。基于 ATP 的结果往往比参考值低一个数量级。不过,考虑到这一点,所开发的检测方法可作为常规质量控制和卫生监测的快速、实时替代方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Breaking the Mold: Towards Rapid and Cost-Effective Microbial Contamination Detection in Paints and Cosmetics Using ATP-Bioluminescence
Traditional culture-based methods, though a “gold standard” for bacterial detection in various industrial sectors, do often not fulfill today’s high requirements regarding rapidity, on-site applicability, and cost-efficiency both during operation and evaluation. Here, the feasibility of using an adenosine triphosphate (ATP)-based assay for determining microbial contaminations in paints and cosmetics was investigated and compared with standard plate count techniques and dipslides. Therefore, we initially determined the level of sensitivity and assessed the accuracy and concordance among the different methods via spiking tests using a mix of frequently abundant bacterial species to simulate microbial contamination. Bioluminescence intensity was linearly proportional to log colony counts over five orders of magnitude (R2 = 0.99), indicating a high level of sensitivity. Overall, the accuracy varied depending on the test specimen, most probably due to matrix-related quenching effects. Although the degree of conformity was consistently higher at target concentrations ≥ 105 CFU·mL−1, microbial contaminations were detectable down to 103 CFU·mL−1, thus meeting the high requirements of various industries. ATP-based results tended to be within an order of magnitude lower than the reference. However, bearing that in mind, the developed assay serves as a rapid, real-time alternative for routine quality control and hygiene monitoring.
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